4.8 Article

Ni/CdS Bifunctional Ti@TiO2 Core-Shell Nanowire Electrode for High-Performance Nonenzymatic Glucose Sensing

Journal

ANALYTICAL CHEMISTRY
Volume 86, Issue 1, Pages 876-883

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ac4034467

Keywords

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Funding

  1. National Natural Science Foundation of China (NNSFC) [20903050]
  2. Fundamental Research Funds for the Central University [Lzujbky-2012-22, Lzujbky-2012-79]
  3. National Science Foundation for Fostering Talents in Basic Research of the National Natural Science Foundation of China [J1103307]
  4. Basic Scientific Research Business Expenses of the Central University and Open Project of Key Laboratory for Magnetism and Magnetic Materials of the Ministry of Education, Lanzhou University [LZUMMM2013004]
  5. National College Students' Innovative Entrepreneurial Training Program of Lanzhou University [20130730096]

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In this work, a Ni/CdS bifunctional Ti@TiO2 core-shell nanowire electrode with excellent electrochemical sensing property was successfully constructed through a hydrothermal and electrodeposition method. Field emission scanning electron microscopy (FESEM) and transmission electron microscopy (TEM) were employed to confirm the synthesis and characterize the morphology of the as-prepared samples. The results revealed that the CdS layer between Ni and TiO2 plays an important role in the uniform nucleation and the following growth of highly dispersive Ni nanoparticle on the Ti@TiO2 core-shell nanowire surface. The bifunctional nanostructured electrode was applied to construct an electrochemical nonenzymatic sensor for the reliable detection of glucose. Under optimized conditions, this nonenzymatic glucose sensor displayed a high sensitivity up to 1136.67 mu A mM(-1) cm(-2), a wider liner range of 0.005-12 mM, and a lower detection limit of 0.35 mu M for glucose oxidation. The high dispersity of Ni nanoparticles, combined with the anti-poisoning faculty against the intermediate derived from the self-cleaning ability of CdS under the photoexcitation, was considered to be responsible for these enhanced electrochemical performances. Importantly, favorable reproducibility and long-term performance were also obtained thanks to the robust frameworks. All these results indicate this novel electrode is a promising candidate for nonenzymatic glucose sensing.

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